[0001] This invention relates to an absorption refrigeration/heat pump system which comprises
a higher temperature subsystem and a lower temperature subsystem with various components
of the subsystems in heat exchange relationship with one another to provide greater
performance than usually obtainable in such systems and/or to permit the use of fluids
that have been unsatisfactory in conventional systems. More particularly, it relates
to an absorption refrigeration or heat pump system comprising a higher temperature
subsystem and a lower temperature subsystem in which the higher temperature condenser
is in a heat exchange relationship with the lower temperature desorber and the heating
and/or cooling loads are arranged to exchange heat with various combinations of the
other components of the system.
[0002] Absorption refrigeration and heat pump systems are well known and their basic operating
characteristics need little further description except to establish the definitions
and context in which this invention will be later described.
[0003] In a typical system water is a refrigerant dissolved in a lithium bromide/water solution,
often called the "solution pair". Water is absorbed in the lithium bromide solution
to varying degrees throughout the system and the heat of absorption is added or extracted
to produce heating and cooling effects.
[0004] The solution pair enters a generator where it is subjected to heat. The applied heat
desorbs the refrigerant water in the form of vapor which is conveyed to the- condenser.
There, external ambient cooling condenses the water vapor to liquid, which is conveyed
through an expansion valve, into an evaporator where heat is absorbed. In the refrigeration
system the heat absorbed in the evaporator is from the cooling load.
[0005] The low pressure vapor then passes to an absorber where ambient cooling allows the
lithium bromide solution to absorb the water vapor. The solution pair is then conveyed
to a recuperator by a pump. The recuperator is a counter flow heat exchanger where
heat from the absorbent, lithium bromide/water solution, flowing from the generator
to the absorber, heats the returning solution pair flowing from the absorber to the
generator. In the heating cycle, the cooling applied at the absorber and/or the condenser
is the heat delivery to the heating load.
[0006] As a matter of convenience and terminology, each part of the absorption system, which
operates at the same pressure, is termed a chamber.
[0007] Conventional absorption refrigeration and heat systems are two-chamber systems. When
operated as a heat pump they give respectable heating performance but give extremely
poor cooling performance. Using ammonia (NH
3) as the refrigerant and water (H
20) as the sorbent, heat pumping can occur from an ambient air source which is at temperatures
below freezing. In a theoretical assessment where the air is treated as if it were
dry so that no defrosting is necessary, the typical two chamber NH
3/H
20 heat pump would represent a significant improvement over what would be expected
of a simple furnace. However, since heat pumps are more expensive than a furnace,
cooling season performance benefits are needed to justify the added expense. In other
words, the heat pump must act as an air conditioner also to offset the cost of a separate
installation of an air conditioner with the furnace. For cooling, an NHJH20 system
is predicted to have a performance factor, PF (PF=cooling effect/ combustion heat
input) equal to about 0.46. This low performance index causes unreasonable fuel (or
energy) costs from excessive fuel (or energy) use. This low performance of the ammonia/water
system results from the poor performance characteristics of the ammonia/water solution
at the higher temperature ranges if the heat is supplied to the absorption system
at higher temperatures.
[0008] Three-chamber systems of various types have been suggested which would improve the
performance by staging the desorption process into effects. This would allow for increasing
the actual temperature in which the driving heat is added to the system (cycle). The
reference Carnot cycle efficiency would be increased and the real cycle would follow
suit. However again this increase in temperature would represent an unreasonably high
pressure for ammonia/water systems and would force the system to operate in regions
for which data is not readily available. Extrapolations estimate a peak cycle temperature
of about 204°C (400°F) for an air conditioning case with a 1.7°C (35°F) evaporator
and much higher for a heat pump case with a lower evaporator temperature.
[0009] In addition the pressure and toxicity tend to rule out ammonia/water in a three-chamber
system. The search for organic material such as halogenated hydrocarbons and other
refrigerants as a replacement for the ammonia has been limited by fluid stability
at these higher temperatures. Normal organic refrigerant stability tests anticipate
that it is necessary for oil to be present for operation in vapor compression refrigeration
systems. These high operating temperatures rule out most of the common refrigerants,
particularly when being heated directly by combustion products which often cause local
hot spots, which result in working fluid degradation and/or corrosion of components.
[0010] In the prior art, others have associated various components of absorption refrigeration/heat
pump systems in various ways with the purpose of improving the performance or otherwise
enhancing the operation of these systems. These other prior art systems have met with
varying degrees of success but have apparently not obtained all objectives and are
capable of further improvement as provided by this invention.
[0011] In the prior art, US-A-2350115 describes what may be termed a four-chamber system
that employs some of the characteristics of the present invention but which fails
to recognize the advantages of providing an arrangement that recombines and redirects
the heating and cooling effects of the uncontrolled ambient atmosphere, as well as
the controlled/conditioned atmospheres or loads.
[0012] US―A―3483710 is another example of a prior art version of a four-chamber system that
combines a higher temperature subsystem with a lower temperature subsystem. As disclosed
in US―A―-2350115, although the advantage of placing the higher temperature condenser
in heat exchange relationship with lower temperature desorber is revealed, the interrelationships
between other components are not the same or arranged to the same advantage as the
present invention. This is especially to be noted in connection with the arrangement
of various elements with regard to ambient atmosphere conditions and the conditioned
atmosphere/or load.
[0013] EP-A-0 026 257 discloses an absorption refrigeration and heating system in connection
with a cooling or heating load and a heat sink or source to selectively provide heat
to or remove heat from the load, comprising: at least one first subsystem for operation
at a high temperature and at least one second subsystem for operation at a lower temperature
relative to the first subsystem; each subsystem having components of absorber and
desorber means, condenser means, and evaporator means operatively connected together;
with the condenser means of the higher temperature subsystem in heat exchange relationship
with the desorber means of the lower temperature subsystem; and means to selectively
arrange heat exchange relationships between the load and at least two of the component
means including the higher temperature evaporator, the lower temperature condenser,
the lowertempera- ture evaporator and the lower temperature absorber means, while
arranging a heat exchange relationship between at least one of the other of said component
means and the heat sink or source.
[0014] The absorber and desorber means of the system illustrated in Fig. 3 of EP-A-0026257
are alternating absorber/desorber means, the sorption device of which is operated
by stored heat which enables the use of off-peak energy. The consequent combined absorber/desorber
means impose various limitations on the system. For example the system has to be complicated
by the provision of a third subsystem which interconnects the low temperature desorber
and combined absorber/desorber means. Secondly the system has to alternate between
heat input and heat extraction in the combined absorber/ desorber means so that the
system necessarily has periods of inaction and is not operable to selectively provide
heat or remove heat from the load on demand.
[0015] Usage of the system illustrated in Fig. 3 of EP-A-0026257 is restricted to a cooling
mode by the fact that the low temperature evaporator is permanently connected to a
source, viz. something that is to be cooled, whereas the lower temperature absorber
and the low temperature condenser are permanently connected to a heat user or cooling
tower.
[0016] It is a purpose of this invention to combine the components of the separate subsystems
of a four-chamber system to provide an absorption refrigeration and/or heat pump total
system that is capable of either a higher coefficient of performance for each of its
modes of operation or of being manufactured with efficiencies without reducing performance,
and without resorting to continued search for an ideal fluid pair.
[0017] According to this invention there is provided an absorption refrigeration and heating
system in connection with a cooling or heating load and a heat sink or source to selectively
provide heat to or remove heat from the load, comprising at least one first sub-system
for operation at a high temperature and at least one second sub-system for operation
at a lower temperature relative to the first system; each sub-system having components
of absorber and desorber means, condenser means, and evaporator means operatively
connected together; with the condenser means of the higher temperature sub-system
in heat exchange relationship with desorber means of the lower temperature sub-system;
and means to selectively arrange heat exchange relationships between the load and
at least two of the component means including the higher temperature evaporator, the
lower temperature condenser, the lower temperature evaporator and the lower temperature
absorber means, while arranging a heat exchange relationship between at least one
of the other of said component means and the heat sink or source; wherein both sub-systems
have separate, simultaneously-operable absorber means and desorber means so that they
can both function as continuously-running heat pumps; and said means to selectively
arrange heat exchange relationships between certain of the component means and either
the load or the heat sink or source comprise adjustable means which are arranged so
that, in a cooling mode, the absorber means of the higher temperature sub- system
and said at least one of the other of the component means are connected simultaneously
in heat exchange relationship with the heat sink whereas, in a heating mode, said
at least two of the component means and the absorber means of the higher temperature
sub-system are connected simultaneously in heat exchange relationship with the load.
[0018] The coefficient of performance of a system in which this invention is embodied is
superior to that of a corresponding version of the system shown in Fig. 3 of EP-A-0026257
because the high temperature absorber is always contributing to that performance due
to its connection as well as its continuous operation.
[0019] When operated with the heat sink or source of heat below 7°C (45°F), the evaporator
of the higher temperature subsystem is placed in heat exchange relationship with the
condenser of the lower temperature subsystem and means is provided to balance the
system.
[0020] An additional feature of the invention includes means to pump liquid refrigerant
from the condenser of the higher temperature subsystem to the desorber of the higher
temperature subsystem to balance the evaporator of the higher temperature subsystem
heating requirement with the heating requirement of the condenser of the lower temperature
subsystem.
[0021] The subsystem of this invention employs four chambers. Two chambers are operatively
connected in one two-chamber subsystem and two other chambers are operatively connected
in another subsystem.
[0022] One subsystem employs a higher temperature solution pair having good higher temperature
performance properties, preferably lithium bromide/water with water as the refrigerant
and lithium bromide as the absorbent. The other subsystem employs a different solution
pair, preferably ammonia/water, with ammonia as the refrigerant and water as the absorbent.
The first mentioned subsystem is operated at higher temperatures and the system configuration
allows the pair to be selected to avoid freezing and crystallization problems. The
other, second, subsystem employs a lower temperature solution pair having good low
temperature performance properties and is operated at tower temperatures in the range
where an organic should be expected to operate successfully without toxicity corrosion
or stability problems and where temperatures below freezing are acceptable.
[0023] The first subsystem and the second subsystem; i.e., higher temperature and the lower
temperature subsystem respectively, are operatively combined and connected by placing
the higher temperature condenser in heat exchange relationship with the lower temperature
desorber with other components of the total system also combined in a new and novel
way as will be later described.
[0024] Description of the drawings
Figure 1 is a schematic representation of the arrangements of the various components
of a system in which this invention is embodied, in the air conditioning and warm
ambient heat pump mode of operation.
Figure 2 is a schematic representation of the various components of a system in which
this invention is embodied in the cold ambient heat pump mode of operation.
Figure 3 is a schematic representation of the various components of another system
in which this invention is embodied in the cold ambient heat pump mode of operation.
Figure 4 is an air flow diagram of the various components of the system when operated
in the air conditioning mode shown in Figure 1.
Figure 5 is an air flow diagram of the various components of the system when operated
in the warm heat pump mode shown in Figure 1.
Figure 6 is an air flow diagram of the various components of the system when operated
in the mode shown in Figure 2.
Figure 7 is an air flow diagram of the various components of the system when operated
in the mode shown in Figure 3.
Figure 8 is a P-T-x diagram illustrating the thermodynamic operation of the system
when operated in the modes shown in Figure 1.
Figure 9 is a P-T-x diagram illustrating the thermodynamic performance of the system
when operated in the modes shown in Figures 2 and 3.
Detailed description of the invention
[0025] In a description of this invention, it is important that clear distinction be made
between solutions entering and leaving various components. Therefore, adopted herein
is the notation of the standard setting body on absorption systems in the U.S., the
Ashrae Technical Committee (8.3) on Absorption Machines. Their notation is given in
the following quote from the Ashrae 1979 Equipment Handbook, Chaper 14:
[0026] "To avoid confusion of terminology in the absorption field, Ashrae Technical Committee
(8.3) recommends the following standardized terms for the absorbent-refrigerant solution.
Weak absorbent is that solution which has picked up refrigerant in the absorber and
is then weak in its affinity for refrigerant. Strong absorber is that solution which
has had refrigerant driven from it in the generator and, therefore, has a strong affinity
for refrigerant".
[0027] In the schematic representation of Figure 1, the hexagonal blocks represent the components
of the first subsystem and the circles represent the components of the second subsystem.
The first subsystem may be interchangeably termed the "high" subsystem and the second,
the "low" subsystem. Components of each may be termed in the same manner, respectively.
[0028] In the preferred embodiment of the invention, in the first (high) subsystem the water
is the refrigerant and lithium bromide (LiBr) is the absorbent.
[0029] The higher temperature desorber 30 of the first subsystem is heated by a flame 31
or other means such as electricity. The desorber 30 is connected by a suitable conduit
32 to a higher temperature condenser 33. The conduit 32 carries superheated refrigerant
vapor to the condenser 33. Heat extracted from the condenser causes the refrigerant
to condense to a liquid.
[0030] The condenser 33 is connected to an expansion valve 34 by a conduit 35 which carries
the condensed liquid refrigerant.
[0031] Expansion valve 34 is connected to a high evaporator 36 where the low pressure refrigerant
vaporizes as it extracts heat from the ambient surroundings. The vaporized refrigerant
is conveyed by conduit means 37 to a high absorber 38 where it weakens the strong
absorbent supplied to the absorber 38 from conduit 43 through expansion valve 42.
[0032] In the high subsystem, the desorber 30 is connected to a recuperator 40 by conduit
means 41. The recuperator 40 is connected to an expansion valve 42 and to the absorber
38 by a conduit means 43. The absorber 38 is connected through a pump 44to the recuperator
40 by a conduit means 45 and the recuperator 40 is connected back to the desorber
30 by a conduit means 46. In this part of the subsystem strong absorbent solution
is carried from the desorber 30 through the recuperator 40 to the absorber 38 where
it absorbs refrigerant and the resulting weak solution is pumped through the recuperator
40 to the desorber 30. Heat is exchanged between the strong absorbent and the weak
absorbent solutions in the recuperator 40.
[0033] In the above described mannerthetwo-chamber I, II, higher temperature, first subsystem
operates in a typical generally conventional manner.
[0034] The solution pair used in chambers III and IV of the second (lower temperature) subsystem
is preferably ammonia and water, with ammonia as the refrigerant and water as the
sorbent.
[0035] Combined with the condenser 33 in heat exchange relationship is a desorber 50 which
is connected to a condenser 51 by conduit means 52. Conduit 52 may include rectifier
sections as typically needed when a volatile sorbent, such as water, is used in a
lower temperature solution system, comprising chambers III and IV.
[0036] Condenser 51 is connected through an expansion valve 53 to an evaporator 54 by a
conduit means 55. Evaporator 54 is connected to an absorber 59 by a conduit means
156 and the exit from the desorber 50 is connected to recuperator 56 by a conduit
57 which continues through an expansion valve 58 to the absorber 59. Through a pump
60, the exit from the absorber 59 is connected through the recuperator 56 to the desorber
50 through conduit means 61.
[0037] In operation, ammonia refrigerant vapor is driven from the desorber 50 by heat from
the condenser 33 and passes through the conduit means 52 to the condenser 51. In condenser
51 heat is given up to a cooling medium, and the liquid refrigerant is carried to
the expansion valve 53 where it expands into the evaporator and becomes vapor as it
receives heat from an external source. The refrigerant vapor is carried to the absorber
59 where heat is given up to a sink and refrigerant is absorbed in a strong absorbent
solution supplied to the absorber 59 from expansion valve 58. The weakened absorbent
solution is pumped back to the desorber 50, being warmed by heat exchange in the recuperator
56.
[0038] Throughout the continued detailed description, the invention is described in the
context of refrigeration and heat pumping for the purpose of heating and cooling the
environmental atmosphere of living space in a building or other shelter. This "heating
and air conditioning" application of the invention is an essential and important use
but it should be understood that in the broader sense the invention may be applicable
in any circumstance where cooling or heating is desired and it may be advantageous
to use an absorption multi-purpose system. Air conditioning mode of operation
[0039] In the air conditioning mode high evaporator 36 and the low evaporator 54 are connected
in series heat exchange relationship with the flow of air from the conditioned living
space environment (the load).
[0040] As shown in Figure 1, components operating at higher temperatures are shown to the
right and components operating at lower temperatures are shown to the left, relative
to each other. The load is progressively cooled as it passes across the evaporators
36 and 54 respectively. As shown in Figure 4, a fan 120 draws air from a living space
return duct 121, and with dampers 122 and 124 in the "A" position, forces that air
through a duct 123 to the high evaporator 36. With dampers 127 and 128 in the "A"
position, house air leaves evaporator 36 and passes through a duct 126, low evaporator
54, and a duct 129 from which it is returned to the conditioned living space.
[0041] Outside air is drawn into the system through a duct 101, and with a damper 102 in
the "A" position, through duct 103 to high absorber 38. Damper 106 isolates the outside
air inlet duct 103 from the interior plenum (evaporator inlet) 125 to high evaporator
36. Flow continues through duct 112 to the low absorber 59, duct (condenser inlet)
113, and low condenser 51 to duct 114. Damper 109 placed in the "A" position connects
duct 114 with the discharge duct 110 which contains the fan 111, that induces the
flow of outside air.
[0042] As seen in Figures 1 and 4, heat from the absorber 38, condenser 51, and absorber
59 is rejected to the outside air (the heat sink) by means of the air flow pattern
established across these components.
[0043] Referring to Figures 1 and 8, in the air conditioning mode of the preferred embodiment,
a saturation temperature of 123°C (254°F) establishes the pressure at 220 kN/m
2 (32 psia) for operations in chamber I. The desorber 30 receives weak absorbent solution
(57% LiBr) after being heated in the recuperator 40 by the strong absorbent solution
leaving the desorber 30 at 60% LiBr and 184°C (363°F). In the total system in this
mode, only the desorber 30 receives the heat from the external source 31.
[0044] Saturation conditions at the evaporator 36 establish the pressure of 1.24 kN/m
2 (0.18 Psia) and a temperature 10°C (50°F). In the absorber 38, the strong absorbent
solution enters at a temperature of 49.4°C (121°F) and 60% LiBr equilibrium condition.
Heat is rejected to the heat sink which in an air conditioning system, may be the
outside ambient atmosphere.
[0045] Because the solution pair has been selected for its performance under these conditions,
operations are below the crystallization limit and especially advantageous for the
heat exchange relationship between the condenser 33 and the desorber 50.
[0046] A saturation temperature of 60°C (140°F) in condenser 51 establishes the pressure
at 2413 kN/ m
2 (350 Psia) for operations in chamber III with NH
3/H
20 as the lower temperature fluid pair. The desorber 50 receives weak absorbent solution
(42.8% NH
3) at a temperature of 114°C (237°F) and the desorber 50 receives heat from the condenser
33.
[0047] Saturation conditions at the evaporator 54 establishes the pressure of 490 kN/m
2 (71 psia) at temperature 4.4°C (40°F). The absorber 59 receives strong solution at
39.6% NH
3 and a temperature of 55°C (131°F), discharges eak solution at approximately 50°C
(121°F), and gives up heat to the heat sink in heat exchange relationship.
[0048] The theoretical performance of this cycle is predicted to be: COP=0.
96. Taking loses into the account, the actual coefficient of performance is estimated
to be 0.88 with a high performance combustor 31.
Warm ambient heat pump operation
[0049] When the outside ambient air conditions are about 7°C (45°F) and above, heat pump
operations are carried out in the same system except that the roles of the ambient
and load are reversed as shown in Figure 5 for a system which is heating or air conditioning.
[0050] With dampers 122 and 109 in the "B" position, return air from the living space supplied
by fan 120 is diverted to duct 103, high absorber 38, low absorber 39, and low condenser
51 and then returned to the conditioned air exit duct 129. With dampers 102 and 128
also in the "B" position, outside air passes from inlet 101 through high evaporator
36 and low evaporator 54 before being drawn to exit duct 110 by fan 111. Dampers 124
and 127 remain in the "A" position and damper 106 remains closed.
[0051] In this circumstance, the ambient outside air as a source of heat is caused to flow
across the evaporators 36 and 54 which are arranged in series heat exchange relationship
with the air passing across the evaporator 36 of the higher temperature subsystem
first. Retaining the series nature of the flow of air across the two evaporators allows
the outside air to be cooled to temperatures below freezing without freezing the higher
temperature evaporator. At the same time, imposing the return air from the living
space atmosphere on the high absorber first allows it to be operated away from crystallization
region. Subsequent heating of the living space atmosphere by the absorber 59 and the
condenser 51 can be at higher temperatures to minimize the flow of living space air.
[0052] Theoretical analysis for this mode and example establishes that, for every unit of
heat supplied by the combustion products, 0.96 units of heat can be supplied from
the ambient air. When adjusted for its stack loses, the coefficient of performance
is equal to or greater than 1.7.
Cold ambient heat pump operation
[0053] An outside ambient air temperatures lower than about 7°C (45°F), it is not acceptable
to use the higher temperature evaporator 36 to extract heat from the outside air without
freezing up the higher temperature refrigerant flow with a H
20/ LiBr higher temperature system. To protect the higher temperature evaporator 36
from freezing (and the higher temperature absorber from crystallization) this heat
pumping cycle is carried out by imposing rejection heat from the lower temperature
subsystem upon the highertempera- ture evaporator 36.
[0054] Referring to Figure 2, the system is configured schematically the same as in Figure
1 except that the evaporator 36' is in heat exchange relationship with the condenser
51'. This is accomplished by causing the air flow to pass across these components
as shown in Figure 6. In order to accomplish this, the ducting configuration is modified
as shown in Figure 6.
[0055] Damper valve 106 is located so that it can isolate the condenser inlet 113 and evaporator
inlet 125 when closed, but is shown open in Figure 6, allowing recirculation fan 130
to force a separate flow of air from the high evaporator 36 to the low condenser 51'.
Dampers 124 and 127 and a damper 104 must be in the "B" position and a duct 108 must
be added for this recirculation air flow to occur. As in Figure 5, dampers 102, 109,
122, and 128 remain in the "B" position.
[0056] In addition, a pump 65 is connected from the condenser 33 to the desorber 30 by a
conduit means 66, as shown in Figure 2.
[0057] In operation, liquid condensate is pumped from the condenser 33 to the desorber 30
by the pump 65 as necessary to balance the system when the heat rejection from the
condenser 51' is made equal to the heat addition to the evaporator 36'.
[0058] Additional heat is supplied by the source 31 to vaporize the additional liquid condensate
that is pumped from the condenser 33 to the desorber 30. This supplies extra heat
to the condenser 33 which matches the requirements of desorber 50 in this mode of
operation.
[0059] Referring to Figures 2 and 9, in a preferred example, the condenser 33 operates at
a saturation temperature of 140.6°C (285°F) [(establishing the chamber I pressure
at 366.8 kN/m
2 (53.2 psia)] as it gives off heat the desorber 50 operating at a peak solution temperature
of 136.1°C (277°F). The desorber 30 receives weak absorbent solution at 49.2% LiBr
from the recuperator 40 where it is heated by the strong solution leaving the desorber
30 at 190.5°C (375°F) and 55.3% LiBr.
[0060] The absorber 38 receives refrigerant vapor at 2.2 kN/m
2 (0.32 psia) from evaporator 36' and strong absorbent solution at 51.7°C (125°F) and
55.3% LiBr from the recuperator 40. As the solution is cooled by rejecting heat to
the air in the living space (the load) the leaving solution is at 41.4°C (106°F) and
49.2% LiBr.
[0061] The condenser 51' is assumed to operate at 60°C (140°F) establishing a pressure of
2448 kN/ m
2 (355 psia) in the chamber III. The weak absorbent solution enters the desorber 50
at 117.8°C (244°F) and 41.2% NH
3 after being recuperatively heated by the strong absorbent solution leaving the desorber
50 at 136.1°C (277°F) and 33.3% NH
3. The air flow heat exchange between the condenser 51' and the evaporator 36' establishes
the pressure of chamber II at 2.2 kN/m
2 (0.32 psia). The subsystems are adjusted so that the heat leaving the condenser 51'
is equal to that accepted by the evaporator 36'.
[0062] In the typical example system, the evaporator 54 is assumed to operate at -19.17°C
(-2.5°F) establishing 200 kN/m
2 (29 psia) as the pressure in chamber IV. The evaporator 54 extracts heat from the
cold outside air and the surface will need to be defrosted periodically. The low absorber
59 operates at 29 psia as it rejects heat to air in the heated living space (the load).
Strong solution enters the absorber 59 at 39.7°C (103°F) and 33.3% NH
3 and leaves at 25°C (77°F) and 41.2% NH
3.
[0063] With the refrigerant flow established to match the heat flow between the condenser
51' and the evaporator 36', the desorber 50 requires more heat (about one third more
in the example) than would normally be rejected by the condenser 33. This short fall
of energy is supplied by additional heat input from the source 31. The energy transfer
is accomplished by additional flow of liquid refrigerant from a refrigerant well in
condenser 33 to the desorber 30 driven by pump 65. In the desorber 30 it is mixed
with the solution supplied by pump 44, accomplishing the desired dilution of the solution
flow, and is eventually evaporated by the increased heat flow to supply increased
vapor flow to the condenser 33.
[0064] This results in a theoretical heating COP=1.33 which would reduce to a value near
1.20 when an adjustment is made for stack and other loses in actual practice.
[0065] From a control point of view, it is advantageous to be freed from having to maintain
exact heat flow balances at both the condenser 51' and desorber 50. The preferred
method of accomplishing this is to include the evaporator 36' and the condenser 51'
in the main flow of air to the heated space as shown in Figure 7. When balanced, the
evaporator 36' cools the return air and the high absorber 38 heats the return air
the same amount so that the mixed temperature entering absorber 59 from duct 112 is
the same as the temperature in duct 103. When unbalanced, there is a small net gain
or loss in return air temperature entering absorber 59.
[0066] In Figure 7, dampers 102, 109, 122, 124, 127, and 128 are in the "B" position and
damper valve 106 is open just as in Figure 6. Fan 130 is eliminated and the air flow
losses are reduced.
[0067] In the example about 20% of the heat added to the first higher temperature subsystem
passes directly to the heated space without causing any heat pump augmentation through
the absorber 38. Therefore the only true heat pumping process occurs in the lower
temperature second subsystem in this combined mode. Consequently, it is advantageous
to increase the relative amount of condensate returned to the desorber 30 from the
condenser 33. Various compromises are possible in the adjustment of condensate flow
produced by the pump 65 between these components. Those skilled in the art will find
it a matter of routine adjustment to determine the appropriate amount under certain
operating conditions.
[0068] Referring to Figure 3, an alternative embodiment of the cold ambient heat pump operation
is schematically shown in which the heat input to evaporator 36' is virtually eliminated
by closing valve 34 and diverting all the refrigerant flow through a dilution reservoir
89, and directing the refrigerant from there through valve 90 to the inlet to solution
pump 44. This further reduces the LiBr concentration, increasing the vapor release
from the solution pump flow without excessively broadening the concentration differences
across desorber 30, and reducing the temperature in desorber 30. As shown in Figure
3, some heat flow passes directly from the heat source 31 to the conditioned air by
heat transfer from absorber 38.
[0069] The net coefficient of performance for heating (C.O.P.
h) is therefore increased to about 1.31. This would be the preferred embodiment since
it has the potential for the highest (C.O.P.,,).
[0070] From the foregoing, it is seen that the combination of the various components and
their heat exchange relationships is variable in various combinations to achieve an
overall refrigeration/heat pump system having an unusually high C.O.P., for cooling
of .88 and an unusually high C.O.P.
h for heating of at least 1.31, in the cold ambient heat pump mode. These performances
are accomplished by staging the first subsystem relative to the second subsystem in
alternative combinations through rearrangement of the heat flow in the system relative
to heat exchange between the heat load and the heat sink.
[0071] Figures 4, 5, 6, and 7 show various direct heat exchange relationships between the
components of the absorption system and the air of the conditioned space (the load)
and/or the ambient air (the sink or source). Alternatively, other means may be used
to provide the heat exchange in the relationships between these components and the
load or sink. For instance, hydronic flow loops (i.e., the use of liquid heat exchange
materials such as ethylene glycol conveyed in piping between the components and heat
exchangers in contact with the load or sink) could replace any or all of the direct
heat exchangers that are between the elements in the four chambers and the load or
the ambient. In addition, the parallel flow relationship of high evaporator and high
absorber shown in Figure 7 could alternatively be a series flow relationship, either
directly with the conditioned space air flow or with the hydronic flow loops, which
delivers heat to the conditioned space.
1. An absorption refrigeration and heating system in connection with a cooling or
heating load and a heat sink or source to selectively provide heat to or remove heat
from the load, comprising:
(a) at least one first subsystem for operation at a high temperature and at least
one second subsystem for operation at a lower temperature relative to the first system;
(b) each subsystem having components of absorber and desorber means (30 and 38, 50
and 59), condenser means (33, 51 or 51'), and evaporator means (36 or 36', 54) operatively
connected together;
(c) with the condenser means (33) of the higher temperature subsystem in heat exchange
relationship with desorber means (50) of the lower temperature subsystem; and
(d) means to selectively arrange heat exchange relationships between the load and
at least two of the component means including the higher temperature evaporator (36
or 36'), the lower temperature condenser (51 or 51'), the lower temperature evaporator
(54) and the lower temperature absorber means (59), while arranging a heat exchange
relationship between at least one of the other of said component means and the heat
sink or source;
characterised in that both subsystems have separate, simultaneously-operable absorber
means (38 and 59) and desorber means (30 and 50) so that they can both function as
continuously-running heat pumps; and said means to selectively arrange heat exchange
relationships between certain of the component means and either the load or the heat
sink or source comprise adjustable means which are arranged so that, in a cooling
mode, the absorber means (38) of the higher temperature subsystem and said at least
one of the other of the component means are connected simultaneously in heat exchange
relationship with the heat sink whereas, in a heating mode, said at least two of the
component means and the absorber means (38) of the higher temperature subsystem are
connected simultaneously in heat exchange relationship with the load.
2. A system according to Claim 1 in connection with a cooling load, wherein the evaporator
(36) of the higher temperature subsystem and the evaporator (54) of the lower temperature
subsystem are in series heat exchange relationship with the cooling load.
3. A system according to Claim 1 to selectively provide heat to, or remove heat from,
a load when an ambient heat sink or source of heat is above about 7°C (45°F), wherein:
the evaporator (36) of the higher temperature subsystem and the evaporator (54) of
the lower temperature subsystem are in series heat exchange relationship with the
load in the cooling mode, or with the ambient in the heating mode; and
the absorber (38) of the higher temperature subsystem and the absorber (59) and the
condenser (51) of the lower temperature subsystem are in series heat exchange relationship
with the sink in the cooling mode or the load in the heating mode.
4. A system according to Claim 1 in connection with a load to pump heat from ambient
heat sources at a temperature less than about 7°C (45°F), wherein:
the absorber (38) of the higher temperature subsystem and the absorber (59) of the
lower temperature subsystem are in series heat exchange relationship with the load;
the evaporator (36) of the higher temperature subsystem is in heat exchange relationship
with the condenser (51) of the lower temperature subsystem; and
means (65) are provided to pump liquid refrigerant from the condenser (33) of the
higher temperature subsystem to the desorber (30) of the higher temperature subsystem
to balance the heating requirement of the evaporator (36') of the higher temperature
subsystem with the heating requirement of the condenser (5T) of the lower temperature
subsystem.
5. A system according to Claim 1 to pump heat from ambient heat sources at a temperature
less than about 7°C (45°F), wherein:
the absorber (38) of the higher temperature subsystem, the absorber (59) of the lower
temperature subsystem, and the condenser (51') of the lower temperature subsystem
are in series heat exchange relationship with the load, and the evaporator (36') of
the higher temperature subsystem also is in heat exchange relationship with the load;
and
means (89, 90) are provided to convey liquid refrigerant from the condenser (33) of
the higher temperature subsystem to the desorber (38) of the higher temperature subsystem
through a pump (44) to reduce the direct flow of heat from the heat source to the
conditioned space.
6. A system according to Claim 1 to pump heat from ambient heat sources at a temperature
less than about 7°C (45°F), wherein:
the absorber (59) of the lower temperature subsystem and the condenser (51') of the
lower temperature subsystem are in series heat exchange relationship with the load;
the evaporator (36') of the higher temperature subsystem is substantially eliminated
from cooling the load by reducing the flow of liquid refrigerant to said evaporator;
reservoir means (89) are provided to store excess liquid refrigerant from the condenser
of the higher temperature subsystem and to control the release of liquid refrigerant
to a solution pump (44) in the higher temperature subsystem, to reduce the direct
flow of heat from the heat source to the load by heat transfer from the absorber (38)
of the higher temperature subsystem.
7. A system according to any one of Claims 1 through 6 wherein the first subsystem
employs a refrigerant-absorbent solution selected for high temperature performance
properties and the refrigerant-absorbent solution in the second subsystem is selected
for its low temperature performance properties.
8. A system according to any one of Claims 1 through 6 wherein the higher temperature
subsystem employs an aqueous solution of lithium bromide and water, in which the aqueous
solution of lithium bromide is the absorbent and the water is the refrigerant.
9. A system according to any one of Claims 1 through 6 wherein the lower temperature
subsystem employs a solution of water and ammonia in which the ammonia is the refrigerant
and the ammonia water solution is the absorbent.
10. A system according to any one of Claims 1 through 6 wherein the lower temperature
subsystem employs a solution of water and ammonia in which the ammonia is the refrigerant
and the ammonia water solution is the absorbent, and the higher temperature subsystem
employs an aqueous solution of lithium bromide and water, in which the aqueous solution
of lithium bromide is the absorbent and the water is the refrigerant.
1. Absorptionskälte- und Heizsystem in Verbindung mit einer Kühl- oder Heizlast und
einer Wärmesenke oder -quelle, um der Last selektiv Wärme zuzuführen oder Wärme davon
abzuführen, umfassend:
(a) wenigstens ein erstes Untersystem zum Betrieb bei hoher Temperatur und wenigstens
ein zweites Untersystem zum Betrieb bei einer relativ zum ersten Untersystem niedrigeren
Temperatur;
(b) wobei jedes Untersystem als Komponenten einen Absorber und einen Desorber (30
und 38, 50 und 59), einen Kondensator (33, 51 oder 51') und einen Verdampfer (36 oder
36', 54) aufweist, die funktionsmäßig zusammengeschaltet sind;
(c) wobei der Kondensator (33) des Höhertemperatur-Untersystems mit dem Desorber (50)
des Niedrigtemperatur-Untersystems in Wärmeaustausch steht; und
(d) Mittel zur selektiven Herstellung von Wärmeaustausch-Beziehungen zwischen der
Last und wenigstens zwei der Komponenten, umfassend den Höhertemperatur-Verdampfer
(36 oder 36'), den Niedrigtemperatur-Kondensator (51 oder 51'), den Niedrigtemperatur-Verdampfer
(54) und den Niedrigtemperatur-Absorber (59), unter Herstellung einer Wärmeaustausch-Beziehung
zwischen wenigstens einer der anderen dieser Komponenten und der Wärmesenke oder -quelle;
dadurch gekennzeichnet, daß beide Untersysteme gesonderte, gleichzeitig betriebbare
Absorber (38 und 59) und Desorber (30 und 50) aufweisen, so daß sie beide als kontinuierlich
arbeitende Wärmepumpen arbeiten können; und daß die Mittel zur selektiven Herstellung
von Wärmeaustausch-Beziehungen zwischen bestimmten der Komponenten und entweder der
Last oder der Wärmesenke oder -quelle verstellbare Mittel umfassen, die so angeordnet
sind, daß in einer Kühlbetriebsart der Absorber (38) des Höhertemperatur-Untersystems
und die wenigstens eine der anderen Komponenten gleichzeitig in Wärmeaustausch-Beziehung
mit der Wärmesenke schaltbar sind, während in einer Heizbetriebsart die wenigstens
zwei der Komponenten und der Absorber (38) des Höhertemperatur-Untersystems gleichzeitig
in Wärmeaustausch-Beziehung mit der Last schaltbar sind.
2. System nach Anspruch 1 in Verbindung mit einer Kühllast, wobei der Verdampfer (36)
des Höhertemperatur-Untersystems und der Verdampfer (54) des Niedrigtemperatur-Untersystems
in Reihen-Wärmeaustauschbeziehung mit der Kühllast stehen.
3. System nach Anspruch 1 zur selektiven Lieferung oder Abführung von Wärme zu bzw.
von einer Last, wenn eine Umgebungs-Wärmesenke oder -quelle oberhalb ca. 7°C (45°F)
liegt, wobei:
der Verdampfer (36) des Höhertemperatur-Untersystems und der Verdampfer (54) des Niedrigtemperatur-Untersystems
in Reihe in Wärmeaustausch-Beziehung mit der Last in der Kühlbetriebsart oder mit
der Umgebung in der Heizbetriebsart liegen; und
der Absorber (38) des Höhertemperatur-Untersystems und der Absorber (59) und der Kondensator
(51) des Neidrigtemperatur-Untersystems in Reihe in Wärmeaustausch-Beziehung mit der
Senke in der Kühlbetriebsart oder mit der Last in der Heizbetriebsart liegen.
4. System nach Anspruch 1 in Verbindung mit einer Last zum Fördern von Wärme von Umgebungswärmequellen
mit einer Temperatur von weniger als ca. 7°C (45°F), wobei:
der Absorber (38) des Höhertemperatur-Untersystems und der Absorber (59) des Niedrigtemperatur-Untersystems
in Reihe in Wärmeaustausch- Beziehung mit der Last liegen;
der Verdampfer (36) des Höhertemperatur-Untersystems in Wärmeaustausch-Beziehung mit
dem Kondensator (51) des Neidrigtemperatur-Untersystems liegt; und
Mittel (65) vorgesehen sind, um flüssiges Kältemittel aus dem Kondensator (33) des
Höhertemperatur-Untersystems zum Desorber (30) des Höhertemperatur-Untersystems zu
fördern, um den Heizbedarf des Verdampfers (36') des Höhertemperatur-Untersystems
mit dem Heizbedarf des Kondensators (51') des Niedrigtemperatur-Untersystems abzugleichen.
5. System nach Anspruch 1 zum Fördern von Wärme von Umgebungswärmequellen mit einer
weniger als ca. 7°C (45°F) betragenden Temperatur, wobei:
der Absorber (38) des Höhertemperatur-Untersystems, der Absorber (59) des Niedrigtemperatur-Untersystems
und der Kondensator (51') des Niedrigtemperatur-Untersystems in Reihe in Wärmeaustausch-Beziehung
mit der Last liegen, und der Verdampfer (36') des Höhertemperatur-Untersystems ebenfalls
in Wärmeaustausch-Beziehung mit der Last liegt; und
Mittel (89, 90) vorgesehen sind, die Mittels einer Pumpe (44) flüssiges Kältemittel
aus dem Kondensator (33) des Höhertemperatur-Untersystems zum Desorber (38) des Höhertemperatur-Untersystems
fördern, um den direkten Wärmestrom von der Wärmequelle zu dem klimatisierten Raum
zu vermindern.
6. System nach Anspruch 1 zum Fördern von Wärme von Umgebungswärmequellen mit einer
Temperatur von weniger als ca. 7°C (45°F), wobei:
der Absorber (59) des Niedrigtemperatur-Untersystems und der Kondensator (51') des
Niedrigtemperatur-Untersystems in Reihe in Wärmeaustausch-Beziehung mit der Last liegen;
der Verdampfer (36') des Höhertemperatur-Untersystems von der Kühlung der Last im
wesentlichen ausgeschlossen ist durch Verminderung des Flüssigkältemittelstroms zu
diesem Verdampfer;
ein Behälter (89) vorgesehen ist, in dem überschüssiges Flüssigkältemittel aus dem
Kondensator des Höhertemperatur-Untersystems gespeichert und der Austritt von Flüssigkältemittel
zu einer Lösungspumpe (44) im Höhertemperatur-Untersystem geregelt wird, um den direkten
Wärmestrom von der Wärmequelle zur Last durch Wärmeübertragung vom Absorber (38) des
Höhertemperatur-Untersystems zu vermindern.
7. System nach einem der Ansprüche 1--6, wobei das erste Untersystem eine hinsichtlich
ihrer Hochtemperatur-Funktionseigenschaften ausgewählte, Kältemittel-Absorptionsmittel-Lösung
verwendet und die Kältemittel-Absorptionsmittel-Lösung im zweiten Untersystem im Hinblick
auf ihre Niedrigtemperatur-Funktionseigenschaften ausgewählt ist.
8. System nach einem der Ansprüche 1―6, wobei das Höhertemperatur-Untersystem eine
wäßrige Lithiumbromid-Wasser-Lösung verwendet, in der die wäßrige Lithiumbromidlösung
das Absorptionsmittel und das Wasser das Kältemittel ist.
9. System nach einem der Ansprüche 1―6, wobei das Niedrigtemperatur-Untersystem eine
Wasser-Ammoniak-Lösung verwendet, in der das Ammoniak das Kältemittel und die AmmoniakWasser-Lösung
das Absorptionsmittel ist.
10. System nach einem der Ansprüche 1-6, wobei das Niedrigtemperatur-Untersystem eine
Wasser-Ammoniak-Lösung verwendet, in der das Ammoniak das Kältemittel und die AmmoniakWasser-Lösung
das Absorptionsmittel ist, und das Höhertemperatur-Untersystem eine wäßrige Lithiumbromid-Wasser-Lösung
verwendet, in der die wäßrige Lithiumbromidlösung das Absorptionsmittel und das Wasser
das Kältemittel ist.
1. Système de réfrigération et de chauffage par absorption, relié à une charge refroidissante
ou chauffante et à une source froide ou à une source chaude pour sélectivement fournir
de la chaleur à la charge ou soutirer de la chaleur à celle-ci, ce système comprenant:
a) au moins un premier sous-système destiné à fonctionner à une haute température
et au moins un second sous-système destiné à fonctionner à une température inférieure
à la température de fonctionnement du premier sous-système;
b) chaque sous-système comportant comme parties composantes un moyen formant absorbeur
et un moyen formant désorbeur (30 et 38, 50 et 59), un moyen formant condenseur (33,
51 ou 51'), et un moyen formant évaporateur (36 ou 36', 54) reliés fonctionnellement
les uns aux autres;
c) le moyen formant condenseur (33) du sous-système à la température la plus haute
se trouvant en relation d'échange thermique avec le moyen formant désorbeur (50) du
sous-système à la température la plus basse; et
d) des moyens pour créer sélectivement des relations d'échange thermique entre la
charge et au moins deux des moyens formant parties composantes comprenant l'évaporateur
à la température la plus haute (36 ou 36'), le condenseur à la température la plus
basse (51 ou 51'), l'évaporateur à la température la plus basse (54) et le moyen formant
absorbeur à la température la plus basse (59), tout en créant une relation d'échange
thermique entre au moins un des autres moyens formant parties composantes et la source
froide ou la source chaude;
caractérisé en ce que les deux sous-systèmes comportent des moyens formant absorbeurs
(38 et 59) et des moyens formant désorbeurs (30 et 50) séparés, susceptibles de fonctionner
simultanément, de sorte qu'ils peuvent l'un et l'autre fonctionner comme des pompes
à chaleur à fonctionnement continu, et en ce que les moyens pour créer sélectivement
des relations d'échange thermique entre certains des moyens formant parties composantes
et, sout la charge, sout la source froide ou la source chaude, comprennent des moyens
réglables disposés de telle manière que, dans un mode de fonctionnement en refroidissement,
le moyen formant absorbeur (38) du sous-système à la température la plus haute et
l'autre (ou les autres) moyen(s) formant partie(s) composante(s) sont reliés simultanément
en relation d'échange thermique avec la source froide, tandis que, dans un mode de
fonctionnement en chauffage, le(s) moyen(s) formant partie(s) composante(s) et le
moyen formant absorbeur (38) du sous-système à la température la plus haute sont reliés
simultanément en relation d'échange thermique avec la charge.
2. Système conforme à la revendication 1, relié à une charge refroidissante, dans
lequel l'évaporateur (36) du sous-système à la température la plus haute et l'évaporateur
(54) du sous-système à la température la plus basse sont en relation d'échange thermique,
en série, avec la charge refroidissante.
3. Système conforme à la revendication 1, pour sélectivement fournir de la chaleur
à une charge ou soutirer de la chaleur à celle-ci quand une source froide ou une source
chaude ambiante se trouve à une température supérieure à environ 7°C (45°F), dans
lequel:
l'évaporateur (36) du sous-système à la température la plus haute et l'évaporateur
(54) du sous-système à la température la plus basse sont en relation d'échange thermique,
en série, avec la charge dans le mode de fonctionnement en refroidissement, ou avec
l'ambiante dans le mode de fonctionnement en chauffage; et
l'absorbeur (38) du sous-système à la température la plus haute et l'absorbeur (59)
et le condenseur (51) du sous-système à la température la plus basse sont en relation
d'échange thermique, en série, avec la source froide dans le mode de fonctionnement
en refroidissement ou avec la charge dans le mode de fonctionnement en chauffage.
4. Système conforme à la revendication 1, relié à une charge pour pomper de la chaleur
de sources chaudes ambiantes à une température inférieure à 7°C (45°F) environ, dans
lequel:
l'absorbeur (38) du sous-système à la température la plus haute et l'absorbeur (59)
du sous-système à la température la plus basse sont en relation d'échange thermique,
en série, avec la charge;
l'évaporateur (36) du sous-système à la température la plus haute est en relation
d'échange thermique avec le condenseur (51) du sous-système à la température la plus
basse; et
des moyens (65) sont prévus pour pomper du réfrigérant liquide du condenseur (33)
du sous-système à la.température la plus haute vers le désorbeur (30) du sous-système
à la température la plus haute pour équilibrer les besoins de chauffage de l'évaporateur
(36') du sous-système à la température la plus haute et les besoins de chauffage du
condenseur (51') du sous-système à la température la plus basse.
5. Système conforme à la revendication 1, pour pomper de la chaleur venant de sources
chaudes ambiantes à une température inférieure à 7°C (45°F) environ, dans lequel:
l'absorbeur (38) du sous-système à la température la plus haute, l'absorbeur (59)
du sous-système à la température la plus basse, et le condenseur (51') du sous-système
à la température la plus basse sont en relation d'échange thermique, en série, avec
la charge, et l'évaporateur (36') du sous-système à la température la plus haute est
également en relation d'échange thermique avec la charge; et
des moyens (89, 90) sont prévus pour envoyer du liquide réfrigérant du condenseur
(33) du sous-système à la température la plus haute au désorbeur (38) du sous-système
à la température la plus haute par l'intermédiaire d'une pompe (44) pour réduire le
flux direct de chaleur allant de la source chaude à l'espace conditionné.
6. Système conforme à la revendication 1, pour pomper de la chaleur de sources chaudes
ambiantes à une température inférieure à 7°C (45°F) environ, dans lequel:
l'absorbeur (59) du sous-système à la température la plus basse et le condenseur (51')
du sous-système à la température la plus basse sont en relation d'échange thermique,
en série, avec la charge;
l'évaporateur (36') du sous-système à la température la plus haute est sensiblement
éliminé du refroidissement de la charge en réduisant l'écoulement de liquide réfrigérant
vers ledit évaporateur;
des moyens formant réservoir (89) sont prévus pour stocker du réfrigérant liquide
en excès venant du condenseur du sous-système à la température la plus haute, et pour
régler la libération de réfrigérant liquide vers une pompe de solution (44) dans le
sous-système à la température la plus haute, afin de réduire le flux direct de chaleur
allant de la source chaude à la charge par transfert de chaleur depuis l'absorbeur
(38) du sous-système à la température la plus haute.
7. Système conforme à l'une quelconque des revendications 1 à 6, dans lequel le premier
sous-système utilise une solution réfrigérant-absorbant choisie pour ses propriétés
de performances à haute température, et la solution réfrigérant- absorbant dans le
second sous-système est choisie pour ses propriétés de performances à basse température.
8. Système conforme à l'une quelconque des revendications 1 à 6, dans lequel le sous-système
à la température la plus haute utilise une solution aqueuse de bromure de lithium
et d'eau, dans laquelle la solution aqueuse de bromure de lithium est l'absorbant
et l'eau est le réfrigérant.
9. Système conforme à l'une quelconque des revendications 1 à 6, dans lequel le sous-système
à la température la plus basse utilise une solution d'eau et d'ammoniaque dans laquelle
l'ammoniaque est le réfrigérant et la solution d'eau ammoniacale est l'absorbant.
10. Système conforme à l'une quelconque des revendications 1 à 6, dans lequel le sous-système
à la température la plus basse utilise une solution d'eau et d'ammoniaque dans laquelle
l'ammoniaque est le réfrigérant et la solution d'eau ammoniacale est l'absorbant,
et le sous-système à la température la plus haute utilise une solution aqueuse de
bromure de lithium et d'eau, dans laquelle la solution aqueuse de bromure de lithium
est l'absorbant et l'eau est le réfrigérant.